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用于工艺优化的加速生物催化剂稳定性测试。

Accelerated biocatalyst stability testing for process optimization.

作者信息

Gibbs Phillip R, Uehara Christian S, Neunert Urban, Bommarius Andreas S

机构信息

School of Chemical and Biomolecular Engineering, Parker H. Petit Institute of Bioengineering and Biosciences, Georgia Institute of Technology, 315 Ferst Drive, Atlanta, Georgia 30332-0363, USA.

出版信息

Biotechnol Prog. 2005 May-Jun;21(3):762-74. doi: 10.1021/bp049609k.

Abstract

The deactivation of protein biocatalysts even at relatively low temperatures is one of the principal drawbacks to their use. To aid in the development of novel biocatalysts, we have derived an equation for both time- and temperature-dependent activity of the biocatalyst based on known concepts such as transition state theory and the Lumry-Eyring model. We then derived an analytical solution for the total turnover number (ttn), under isothermal operation, as a function of the catalytic constant kcat, the unfolding equilibrium constant K, and the intrinsic first-order deactivation rate constant(s) k(d,i). Employing an immobilized glucose isomerase biocatalyst in a CSTR and utilizing a linear temperature ramp beyond the Tm of the enzyme, we demonstrate an accelerated method for extracting the thermodynamic and kinetic constants describing the biocatalyst system. In addition, we demonstrate that the predicted biocatalyst behavior at different temperatures and reaction times is consistent with the experimental observations.

摘要

即使在相对较低的温度下,蛋白质生物催化剂的失活也是其应用的主要缺点之一。为了助力新型生物催化剂的开发,我们基于过渡态理论和Lumry-Eyring模型等已知概念,推导出了一个描述生物催化剂活性随时间和温度变化的方程。然后,我们推导了在等温操作下总周转数(ttn)的解析解,它是催化常数kcat、解折叠平衡常数K和固有一级失活速率常数k(d,i)的函数。在连续搅拌釜式反应器(CSTR)中使用固定化葡萄糖异构酶生物催化剂,并利用超过酶的熔点(Tm)的线性温度梯度,我们展示了一种加速提取描述生物催化剂系统的热力学和动力学常数的方法。此外,我们还证明了在不同温度和反应时间下预测的生物催化剂行为与实验观察结果一致。

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